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Updated: Aug 30, 2026

In Vitro Directed Evolution of a Restriction Endonuclease with More Stringent Specificity
Published on: March 25, 2020
S-adenosyl methionine prevents promiscuous DNA cleavage by the EcoP1I type III restriction enzyme
Luke J Peakman1, Massimo Antognozzi, Thomas A Bickle
1DNA-Protein Interactions Group, Department of Biochemistry, University of Bristol, Bristol BS8 1TD, UK.
Abstract:
DNA cleavage by the type III restriction endonuclease EcoP1I was analysed on circular and catenane DNA in a variety of buffers with different salts. In the presence of the cofactor S-adenosyl methionine (AdoMet), and irrespective of buffer, only substrates with two EcoP1I sites in inverted repeat were susceptible to cleavage. Maximal activity was achieved at a Res2Mod2 to site ratio of approximately 1:1 yet resulted in cleavage at only one of the two sites. In contrast, the outcome of reactions in the absence of AdoMet was dependent upon the identity of the monovalent buffer components, in particular the identity of the cation. With Na+, cleavage was observed only on substrates with two sites in inverted repeat at elevated enzyme to site ratios (>15:1). However, with K+ every substrate tested was susceptible to cleavage above an enzyme to site ratio of approximately 3:1, including a DNA molecule with two directly repeated sites and even a DNA molecule with a single site. Above an enzyme to site ratio of 2:1, substrates with two sites in inverted repeat were cleaved at both cognate sites. The rates of cleavage suggested two separate events: a fast primary reaction for the first cleavage of a pair of inverted sites; and an order-of-magnitude slower secondary reaction for the second cleavage of the pair or for the first cleavage of all other site combinations. EcoP1I enzymes mutated in either the ATPase or nuclease motifs did not produce the secondary cleavage reactions. Thus, AdoMet appears to play a dual role in type III endonuclease reactions: Firstly, as an allosteric activator, promoting DNA association; and secondly, as a "specificity factor", ensuring that cleavage occurs only when two endonucleases bind two recognition sites in a designated orientation. However, given the right conditions, AdoMet is not strictly required for DNA cleavage by a type III enzyme.
Insights
The cofactor S-adenosyl methionine (AdoMet) influences EcoP1I endonuclease DNA cleavage specificity. Without AdoMet, buffer salt composition dictates cleavage, revealing AdoMet
Area of Science:
- Biochemistry
- Molecular Biology
- Enzymology
Background:
- Type III restriction enzymes, like EcoP1I, play a crucial role in DNA metabolism.
- Understanding their cleavage mechanisms is vital for molecular biology applications.
- The cofactor S-adenosyl methionine (AdoMet) is known to influence endonuclease activity.
Purpose of the Study:
- To investigate the cleavage activity of the type III restriction endonuclease EcoP1I.
- To determine the role of S-adenosyl methionine (AdoMet) in EcoP1I DNA cleavage.
- To analyze the influence of buffer composition and salt ions on EcoP1I activity.
Main Methods:
- Analysis of DNA cleavage by EcoP1I on circular and catenane DNA substrates.
- Experimentation with various buffer conditions, including different salts and the presence/absence of AdoMet.
- Enzyme kinetics studies to determine reaction rates and enzyme-to-site ratios.
Main Results:
- In the presence of AdoMet, cleavage occurred only on substrates with two EcoP1I sites in inverted repeat.
- In the absence of AdoMet, cleavage patterns were dependent on buffer salt composition (Na+ vs. K+).
- K+ ions facilitated cleavage of various substrates, including those with single or directly repeated sites, at lower enzyme concentrations.
Conclusions:
- AdoMet acts as an allosteric activator and a specificity factor for EcoP1I, ensuring cleavage only occurs with specific site orientations.
- Buffer composition, particularly the cation, significantly impacts EcoP1I activity in the absence of AdoMet.
- AdoMet is not strictly required for DNA cleavage by type III enzymes under specific conditions, but it enhances specificity and efficiency.
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